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vfs_lockf.c revision 1.69.10.2.2.1
      1  1.69.10.2.2.1      matt /*	$NetBSD: vfs_lockf.c,v 1.69.10.2.2.1 2010/04/21 00:28:19 matt Exp $	*/
      2            1.5       cgd 
      3            1.1        ws /*
      4            1.4   mycroft  * Copyright (c) 1982, 1986, 1989, 1993
      5            1.4   mycroft  *	The Regents of the University of California.  All rights reserved.
      6            1.1        ws  *
      7            1.1        ws  * This code is derived from software contributed to Berkeley by
      8            1.1        ws  * Scooter Morris at Genentech Inc.
      9            1.1        ws  *
     10            1.1        ws  * Redistribution and use in source and binary forms, with or without
     11            1.1        ws  * modification, are permitted provided that the following conditions
     12            1.1        ws  * are met:
     13            1.1        ws  * 1. Redistributions of source code must retain the above copyright
     14            1.1        ws  *    notice, this list of conditions and the following disclaimer.
     15            1.1        ws  * 2. Redistributions in binary form must reproduce the above copyright
     16            1.1        ws  *    notice, this list of conditions and the following disclaimer in the
     17            1.1        ws  *    documentation and/or other materials provided with the distribution.
     18           1.33       agc  * 3. Neither the name of the University nor the names of its contributors
     19            1.1        ws  *    may be used to endorse or promote products derived from this software
     20            1.1        ws  *    without specific prior written permission.
     21            1.1        ws  *
     22            1.1        ws  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     23            1.1        ws  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     24            1.1        ws  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     25            1.1        ws  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     26            1.1        ws  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     27            1.1        ws  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     28            1.1        ws  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     29            1.1        ws  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     30            1.1        ws  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     31            1.1        ws  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     32            1.1        ws  * SUCH DAMAGE.
     33            1.1        ws  *
     34           1.12      fvdl  *	@(#)ufs_lockf.c	8.4 (Berkeley) 10/26/94
     35            1.1        ws  */
     36           1.18     lukem 
     37           1.18     lukem #include <sys/cdefs.h>
     38  1.69.10.2.2.1      matt __KERNEL_RCSID(0, "$NetBSD: vfs_lockf.c,v 1.69.10.2.2.1 2010/04/21 00:28:19 matt Exp $");
     39            1.1        ws 
     40            1.1        ws #include <sys/param.h>
     41            1.1        ws #include <sys/systm.h>
     42            1.1        ws #include <sys/kernel.h>
     43            1.1        ws #include <sys/file.h>
     44            1.1        ws #include <sys/proc.h>
     45            1.1        ws #include <sys/vnode.h>
     46           1.35    simonb #include <sys/pool.h>
     47            1.1        ws #include <sys/fcntl.h>
     48            1.1        ws #include <sys/lockf.h>
     49           1.63       mrg #include <sys/atomic.h>
     50           1.49      elad #include <sys/kauth.h>
     51           1.69     pooka #include <sys/uidinfo.h>
     52           1.22   thorpej 
     53           1.50      yamt /*
     54           1.50      yamt  * The lockf structure is a kernel structure which contains the information
     55           1.50      yamt  * associated with a byte range lock.  The lockf structures are linked into
     56           1.60        ad  * the vnode structure.  Locks are sorted by the starting byte of the lock for
     57           1.50      yamt  * efficiency.
     58           1.50      yamt  *
     59           1.50      yamt  * lf_next is used for two purposes, depending on whether the lock is
     60           1.50      yamt  * being held, or is in conflict with an existing lock.  If this lock
     61           1.50      yamt  * is held, it indicates the next lock on the same vnode.
     62           1.50      yamt  * For pending locks, if lock->lf_next is non-NULL, then lock->lf_block
     63           1.50      yamt  * must be queued on the lf_blkhd TAILQ of lock->lf_next.
     64           1.50      yamt  */
     65           1.50      yamt 
     66           1.50      yamt TAILQ_HEAD(locklist, lockf);
     67           1.50      yamt 
     68           1.50      yamt struct lockf {
     69           1.65        ad 	kcondvar_t lf_cv;	 /* Signalling */
     70           1.50      yamt 	short	lf_flags;	 /* Lock semantics: F_POSIX, F_FLOCK, F_WAIT */
     71           1.50      yamt 	short	lf_type;	 /* Lock type: F_RDLCK, F_WRLCK */
     72           1.50      yamt 	off_t	lf_start;	 /* The byte # of the start of the lock */
     73           1.50      yamt 	off_t	lf_end;		 /* The byte # of the end of the lock (-1=EOF)*/
     74           1.50      yamt 	void	*lf_id;		 /* process or file description holding lock */
     75           1.50      yamt 	struct	lockf **lf_head; /* Back pointer to the head of lockf list */
     76           1.50      yamt 	struct	lockf *lf_next;	 /* Next lock on this vnode, or blocking lock */
     77           1.50      yamt 	struct  locklist lf_blkhd; /* List of requests blocked on this lock */
     78           1.50      yamt 	TAILQ_ENTRY(lockf) lf_block;/* A request waiting for a lock */
     79           1.50      yamt 	uid_t	lf_uid;		 /* User ID responsible */
     80           1.50      yamt };
     81           1.50      yamt 
     82           1.50      yamt /* Maximum length of sleep chains to traverse to try and detect deadlock. */
     83           1.50      yamt #define MAXDEPTH 50
     84           1.50      yamt 
     85           1.65        ad static pool_cache_t lockf_cache;
     86           1.65        ad static kmutex_t *lockf_lock;
     87           1.65        ad static char lockstr[] = "lockf";
     88            1.1        ws 
     89            1.1        ws /*
     90            1.6   mycroft  * This variable controls the maximum number of processes that will
     91            1.6   mycroft  * be checked in doing deadlock detection.
     92            1.6   mycroft  */
     93            1.6   mycroft int maxlockdepth = MAXDEPTH;
     94            1.6   mycroft 
     95            1.6   mycroft #ifdef LOCKF_DEBUG
     96            1.6   mycroft int	lockf_debug = 0;
     97            1.6   mycroft #endif
     98            1.6   mycroft 
     99            1.6   mycroft #define SELF	0x1
    100            1.6   mycroft #define OTHERS	0x2
    101            1.6   mycroft 
    102            1.6   mycroft /*
    103           1.16  sommerfe  * XXX TODO
    104           1.58  christos  * Misc cleanups: "void *id" should be visible in the API as a
    105           1.16  sommerfe  * "struct proc *".
    106           1.16  sommerfe  * (This requires rototilling all VFS's which support advisory locking).
    107           1.16  sommerfe  */
    108           1.16  sommerfe 
    109           1.16  sommerfe /*
    110           1.16  sommerfe  * If there's a lot of lock contention on a single vnode, locking
    111           1.16  sommerfe  * schemes which allow for more paralleism would be needed.  Given how
    112           1.16  sommerfe  * infrequently byte-range locks are actually used in typical BSD
    113           1.16  sommerfe  * code, a more complex approach probably isn't worth it.
    114           1.16  sommerfe  */
    115           1.16  sommerfe 
    116           1.16  sommerfe /*
    117           1.38  christos  * We enforce a limit on locks by uid, so that a single user cannot
    118           1.38  christos  * run the kernel out of memory.  For now, the limit is pretty coarse.
    119           1.38  christos  * There is no limit on root.
    120           1.38  christos  *
    121           1.38  christos  * Splitting a lock will always succeed, regardless of current allocations.
    122           1.38  christos  * If you're slightly above the limit, we still have to permit an allocation
    123           1.38  christos  * so that the unlock can succeed.  If the unlocking causes too many splits,
    124           1.38  christos  * however, you're totally cutoff.
    125           1.38  christos  */
    126           1.38  christos int maxlocksperuid = 1024;
    127           1.38  christos 
    128           1.45   thorpej #ifdef LOCKF_DEBUG
    129           1.45   thorpej /*
    130           1.45   thorpej  * Print out a lock.
    131           1.45   thorpej  */
    132           1.45   thorpej static void
    133           1.56  christos lf_print(const char *tag, struct lockf *lock)
    134           1.45   thorpej {
    135           1.45   thorpej 
    136           1.45   thorpej 	printf("%s: lock %p for ", tag, lock);
    137           1.45   thorpej 	if (lock->lf_flags & F_POSIX)
    138           1.45   thorpej 		printf("proc %d", ((struct proc *)lock->lf_id)->p_pid);
    139           1.45   thorpej 	else
    140           1.45   thorpej 		printf("file %p", (struct file *)lock->lf_id);
    141           1.45   thorpej 	printf(" %s, start %qx, end %qx",
    142           1.45   thorpej 		lock->lf_type == F_RDLCK ? "shared" :
    143           1.45   thorpej 		lock->lf_type == F_WRLCK ? "exclusive" :
    144           1.45   thorpej 		lock->lf_type == F_UNLCK ? "unlock" :
    145           1.45   thorpej 		"unknown", lock->lf_start, lock->lf_end);
    146           1.45   thorpej 	if (TAILQ_FIRST(&lock->lf_blkhd))
    147           1.45   thorpej 		printf(" block %p\n", TAILQ_FIRST(&lock->lf_blkhd));
    148           1.45   thorpej 	else
    149           1.45   thorpej 		printf("\n");
    150           1.45   thorpej }
    151           1.45   thorpej 
    152           1.45   thorpej static void
    153           1.56  christos lf_printlist(const char *tag, struct lockf *lock)
    154           1.45   thorpej {
    155           1.45   thorpej 	struct lockf *lf, *blk;
    156           1.45   thorpej 
    157           1.45   thorpej 	printf("%s: Lock list:\n", tag);
    158           1.45   thorpej 	for (lf = *lock->lf_head; lf; lf = lf->lf_next) {
    159           1.45   thorpej 		printf("\tlock %p for ", lf);
    160           1.45   thorpej 		if (lf->lf_flags & F_POSIX)
    161           1.45   thorpej 			printf("proc %d", ((struct proc *)lf->lf_id)->p_pid);
    162           1.45   thorpej 		else
    163           1.45   thorpej 			printf("file %p", (struct file *)lf->lf_id);
    164           1.45   thorpej 		printf(", %s, start %qx, end %qx",
    165           1.45   thorpej 			lf->lf_type == F_RDLCK ? "shared" :
    166           1.45   thorpej 			lf->lf_type == F_WRLCK ? "exclusive" :
    167           1.45   thorpej 			lf->lf_type == F_UNLCK ? "unlock" :
    168           1.45   thorpej 			"unknown", lf->lf_start, lf->lf_end);
    169           1.45   thorpej 		TAILQ_FOREACH(blk, &lf->lf_blkhd, lf_block) {
    170           1.45   thorpej 			if (blk->lf_flags & F_POSIX)
    171           1.66     skrll 				printf("; proc %d",
    172           1.45   thorpej 				    ((struct proc *)blk->lf_id)->p_pid);
    173           1.45   thorpej 			else
    174           1.66     skrll 				printf("; file %p", (struct file *)blk->lf_id);
    175           1.45   thorpej 			printf(", %s, start %qx, end %qx",
    176           1.45   thorpej 				blk->lf_type == F_RDLCK ? "shared" :
    177           1.45   thorpej 				blk->lf_type == F_WRLCK ? "exclusive" :
    178           1.45   thorpej 				blk->lf_type == F_UNLCK ? "unlock" :
    179           1.45   thorpej 				"unknown", blk->lf_start, blk->lf_end);
    180           1.45   thorpej 			if (TAILQ_FIRST(&blk->lf_blkhd))
    181           1.45   thorpej 				 panic("lf_printlist: bad list");
    182           1.45   thorpej 		}
    183           1.45   thorpej 		printf("\n");
    184           1.45   thorpej 	}
    185           1.45   thorpej }
    186           1.45   thorpej #endif /* LOCKF_DEBUG */
    187           1.45   thorpej 
    188           1.38  christos /*
    189           1.38  christos  * 3 options for allowfail.
    190           1.38  christos  * 0 - always allocate.  1 - cutoff at limit.  2 - cutoff at double limit.
    191           1.38  christos  */
    192           1.45   thorpej static struct lockf *
    193      1.69.10.2       snj lf_alloc(int allowfail)
    194           1.38  christos {
    195           1.38  christos 	struct uidinfo *uip;
    196           1.38  christos 	struct lockf *lock;
    197           1.62     rmind 	u_long lcnt;
    198      1.69.10.2       snj 	const uid_t uid = kauth_cred_geteuid(kauth_cred_get());
    199           1.38  christos 
    200           1.38  christos 	uip = uid_find(uid);
    201           1.62     rmind 	lcnt = atomic_inc_ulong_nv(&uip->ui_lockcnt);
    202           1.62     rmind 	if (uid && allowfail && lcnt >
    203           1.40  christos 	    (allowfail == 1 ? maxlocksperuid : (maxlocksperuid * 2))) {
    204           1.62     rmind 		atomic_dec_ulong(&uip->ui_lockcnt);
    205           1.40  christos 		return NULL;
    206           1.40  christos 	}
    207           1.62     rmind 
    208           1.65        ad 	lock = pool_cache_get(lockf_cache, PR_WAITOK);
    209           1.38  christos 	lock->lf_uid = uid;
    210           1.40  christos 	return lock;
    211           1.38  christos }
    212           1.38  christos 
    213           1.45   thorpej static void
    214           1.38  christos lf_free(struct lockf *lock)
    215           1.38  christos {
    216           1.38  christos 	struct uidinfo *uip;
    217           1.38  christos 
    218           1.38  christos 	uip = uid_find(lock->lf_uid);
    219           1.62     rmind 	atomic_dec_ulong(&uip->ui_lockcnt);
    220           1.65        ad 	pool_cache_put(lockf_cache, lock);
    221           1.65        ad }
    222           1.65        ad 
    223           1.65        ad static int
    224           1.65        ad lf_ctor(void *arg, void *obj, int flag)
    225           1.65        ad {
    226           1.65        ad 	struct lockf *lock;
    227           1.62     rmind 
    228           1.65        ad 	lock = obj;
    229           1.65        ad 	cv_init(&lock->lf_cv, lockstr);
    230           1.65        ad 
    231           1.65        ad 	return 0;
    232           1.65        ad }
    233           1.65        ad 
    234           1.65        ad static void
    235           1.65        ad lf_dtor(void *arg, void *obj)
    236           1.65        ad {
    237           1.65        ad 	struct lockf *lock;
    238           1.65        ad 
    239           1.65        ad 	lock = obj;
    240           1.61        ad 	cv_destroy(&lock->lf_cv);
    241           1.38  christos }
    242           1.38  christos 
    243           1.38  christos /*
    244           1.45   thorpej  * Walk the list of locks for an inode to
    245           1.45   thorpej  * find an overlapping lock (if any).
    246           1.45   thorpej  *
    247           1.45   thorpej  * NOTE: this returns only the FIRST overlapping lock.  There
    248           1.45   thorpej  *	 may be more than one.
    249            1.1        ws  */
    250           1.45   thorpej static int
    251           1.45   thorpej lf_findoverlap(struct lockf *lf, struct lockf *lock, int type,
    252           1.45   thorpej     struct lockf ***prev, struct lockf **overlap)
    253            1.1        ws {
    254            1.1        ws 	off_t start, end;
    255            1.1        ws 
    256           1.45   thorpej 	*overlap = lf;
    257           1.54      yamt 	if (lf == NULL)
    258           1.45   thorpej 		return 0;
    259           1.45   thorpej #ifdef LOCKF_DEBUG
    260           1.45   thorpej 	if (lockf_debug & 2)
    261           1.45   thorpej 		lf_print("lf_findoverlap: looking for overlap in", lock);
    262           1.45   thorpej #endif /* LOCKF_DEBUG */
    263           1.45   thorpej 	start = lock->lf_start;
    264           1.45   thorpej 	end = lock->lf_end;
    265           1.54      yamt 	while (lf != NULL) {
    266           1.45   thorpej 		if (((type == SELF) && lf->lf_id != lock->lf_id) ||
    267           1.45   thorpej 		    ((type == OTHERS) && lf->lf_id == lock->lf_id)) {
    268           1.45   thorpej 			*prev = &lf->lf_next;
    269           1.45   thorpej 			*overlap = lf = lf->lf_next;
    270           1.45   thorpej 			continue;
    271           1.45   thorpej 		}
    272           1.45   thorpej #ifdef LOCKF_DEBUG
    273           1.45   thorpej 		if (lockf_debug & 2)
    274           1.45   thorpej 			lf_print("\tchecking", lf);
    275           1.45   thorpej #endif /* LOCKF_DEBUG */
    276            1.1        ws 		/*
    277           1.45   thorpej 		 * OK, check for overlap
    278           1.45   thorpej 		 *
    279           1.45   thorpej 		 * Six cases:
    280           1.45   thorpej 		 *	0) no overlap
    281           1.45   thorpej 		 *	1) overlap == lock
    282           1.45   thorpej 		 *	2) overlap contains lock
    283           1.45   thorpej 		 *	3) lock contains overlap
    284           1.45   thorpej 		 *	4) overlap starts before lock
    285           1.45   thorpej 		 *	5) overlap ends after lock
    286            1.1        ws 		 */
    287           1.45   thorpej 		if ((lf->lf_end != -1 && start > lf->lf_end) ||
    288           1.45   thorpej 		    (end != -1 && lf->lf_start > end)) {
    289           1.45   thorpej 			/* Case 0 */
    290           1.45   thorpej #ifdef LOCKF_DEBUG
    291           1.45   thorpej 			if (lockf_debug & 2)
    292           1.45   thorpej 				printf("no overlap\n");
    293           1.45   thorpej #endif /* LOCKF_DEBUG */
    294           1.45   thorpej 			if ((type & SELF) && end != -1 && lf->lf_start > end)
    295           1.45   thorpej 				return 0;
    296           1.45   thorpej 			*prev = &lf->lf_next;
    297           1.45   thorpej 			*overlap = lf = lf->lf_next;
    298           1.45   thorpej 			continue;
    299           1.45   thorpej 		}
    300           1.45   thorpej 		if ((lf->lf_start == start) && (lf->lf_end == end)) {
    301           1.45   thorpej 			/* Case 1 */
    302           1.45   thorpej #ifdef LOCKF_DEBUG
    303           1.45   thorpej 			if (lockf_debug & 2)
    304           1.45   thorpej 				printf("overlap == lock\n");
    305           1.45   thorpej #endif /* LOCKF_DEBUG */
    306           1.45   thorpej 			return 1;
    307           1.45   thorpej 		}
    308           1.45   thorpej 		if ((lf->lf_start <= start) &&
    309           1.45   thorpej 		    (end != -1) &&
    310           1.45   thorpej 		    ((lf->lf_end >= end) || (lf->lf_end == -1))) {
    311           1.45   thorpej 			/* Case 2 */
    312           1.45   thorpej #ifdef LOCKF_DEBUG
    313           1.45   thorpej 			if (lockf_debug & 2)
    314           1.45   thorpej 				printf("overlap contains lock\n");
    315           1.45   thorpej #endif /* LOCKF_DEBUG */
    316           1.45   thorpej 			return 2;
    317           1.45   thorpej 		}
    318           1.45   thorpej 		if (start <= lf->lf_start &&
    319           1.45   thorpej 		           (end == -1 ||
    320           1.45   thorpej 			   (lf->lf_end != -1 && end >= lf->lf_end))) {
    321           1.45   thorpej 			/* Case 3 */
    322           1.45   thorpej #ifdef LOCKF_DEBUG
    323           1.45   thorpej 			if (lockf_debug & 2)
    324           1.45   thorpej 				printf("lock contains overlap\n");
    325           1.45   thorpej #endif /* LOCKF_DEBUG */
    326           1.45   thorpej 			return 3;
    327           1.45   thorpej 		}
    328           1.45   thorpej 		if ((lf->lf_start < start) &&
    329           1.45   thorpej 			((lf->lf_end >= start) || (lf->lf_end == -1))) {
    330           1.45   thorpej 			/* Case 4 */
    331           1.45   thorpej #ifdef LOCKF_DEBUG
    332           1.45   thorpej 			if (lockf_debug & 2)
    333           1.45   thorpej 				printf("overlap starts before lock\n");
    334           1.45   thorpej #endif /* LOCKF_DEBUG */
    335           1.45   thorpej 			return 4;
    336           1.45   thorpej 		}
    337           1.45   thorpej 		if ((lf->lf_start > start) &&
    338           1.45   thorpej 			(end != -1) &&
    339           1.45   thorpej 			((lf->lf_end > end) || (lf->lf_end == -1))) {
    340           1.45   thorpej 			/* Case 5 */
    341           1.45   thorpej #ifdef LOCKF_DEBUG
    342           1.45   thorpej 			if (lockf_debug & 2)
    343           1.45   thorpej 				printf("overlap ends after lock\n");
    344           1.45   thorpej #endif /* LOCKF_DEBUG */
    345           1.45   thorpej 			return 5;
    346           1.45   thorpej 		}
    347           1.45   thorpej 		panic("lf_findoverlap: default");
    348           1.45   thorpej 	}
    349           1.45   thorpej 	return 0;
    350           1.45   thorpej }
    351            1.1        ws 
    352           1.45   thorpej /*
    353           1.45   thorpej  * Split a lock and a contained region into
    354           1.45   thorpej  * two or three locks as necessary.
    355           1.45   thorpej  */
    356           1.45   thorpej static void
    357           1.45   thorpej lf_split(struct lockf *lock1, struct lockf *lock2, struct lockf **sparelock)
    358           1.45   thorpej {
    359           1.45   thorpej 	struct lockf *splitlock;
    360            1.1        ws 
    361           1.45   thorpej #ifdef LOCKF_DEBUG
    362           1.45   thorpej 	if (lockf_debug & 2) {
    363           1.45   thorpej 		lf_print("lf_split", lock1);
    364           1.45   thorpej 		lf_print("splitting from", lock2);
    365            1.1        ws 	}
    366           1.45   thorpej #endif /* LOCKF_DEBUG */
    367           1.10    kleink 	/*
    368           1.45   thorpej 	 * Check to see if spliting into only two pieces.
    369           1.27      yamt 	 */
    370           1.45   thorpej 	if (lock1->lf_start == lock2->lf_start) {
    371           1.45   thorpej 		lock1->lf_start = lock2->lf_end + 1;
    372           1.45   thorpej 		lock2->lf_next = lock1;
    373           1.45   thorpej 		return;
    374           1.27      yamt 	}
    375           1.45   thorpej 	if (lock1->lf_end == lock2->lf_end) {
    376           1.45   thorpej 		lock1->lf_end = lock2->lf_start - 1;
    377           1.45   thorpej 		lock2->lf_next = lock1->lf_next;
    378           1.45   thorpej 		lock1->lf_next = lock2;
    379           1.45   thorpej 		return;
    380           1.27      yamt 	}
    381           1.27      yamt 	/*
    382           1.45   thorpej 	 * Make a new lock consisting of the last part of
    383           1.45   thorpej 	 * the encompassing lock
    384           1.10    kleink 	 */
    385           1.45   thorpej 	splitlock = *sparelock;
    386           1.45   thorpej 	*sparelock = NULL;
    387      1.69.10.1       snj 	cv_destroy(&splitlock->lf_cv);
    388           1.45   thorpej 	memcpy(splitlock, lock1, sizeof(*splitlock));
    389           1.67     skrll 	cv_init(&splitlock->lf_cv, lockstr);
    390           1.67     skrll 
    391           1.45   thorpej 	splitlock->lf_start = lock2->lf_end + 1;
    392           1.45   thorpej 	TAILQ_INIT(&splitlock->lf_blkhd);
    393           1.45   thorpej 	lock1->lf_end = lock2->lf_start - 1;
    394            1.1        ws 	/*
    395           1.45   thorpej 	 * OK, now link it in
    396           1.21   thorpej 	 */
    397           1.45   thorpej 	splitlock->lf_next = lock1->lf_next;
    398           1.45   thorpej 	lock2->lf_next = splitlock;
    399           1.45   thorpej 	lock1->lf_next = lock2;
    400           1.45   thorpej }
    401           1.45   thorpej 
    402           1.45   thorpej /*
    403           1.45   thorpej  * Wakeup a blocklist
    404           1.45   thorpej  */
    405           1.45   thorpej static void
    406           1.45   thorpej lf_wakelock(struct lockf *listhead)
    407           1.45   thorpej {
    408           1.45   thorpej 	struct lockf *wakelock;
    409           1.21   thorpej 
    410           1.45   thorpej 	while ((wakelock = TAILQ_FIRST(&listhead->lf_blkhd))) {
    411           1.45   thorpej 		KASSERT(wakelock->lf_next == listhead);
    412           1.45   thorpej 		TAILQ_REMOVE(&listhead->lf_blkhd, wakelock, lf_block);
    413           1.54      yamt 		wakelock->lf_next = NULL;
    414           1.45   thorpej #ifdef LOCKF_DEBUG
    415           1.45   thorpej 		if (lockf_debug & 2)
    416           1.45   thorpej 			lf_print("lf_wakelock: awakening", wakelock);
    417           1.45   thorpej #endif
    418           1.61        ad 		cv_broadcast(&wakelock->lf_cv);
    419           1.21   thorpej 	}
    420           1.45   thorpej }
    421           1.45   thorpej 
    422           1.45   thorpej /*
    423           1.45   thorpej  * Remove a byte-range lock on an inode.
    424           1.45   thorpej  *
    425           1.45   thorpej  * Generally, find the lock (or an overlap to that lock)
    426           1.45   thorpej  * and remove it (or shrink it), then wakeup anyone we can.
    427           1.45   thorpej  */
    428           1.45   thorpej static int
    429           1.45   thorpej lf_clearlock(struct lockf *unlock, struct lockf **sparelock)
    430           1.45   thorpej {
    431           1.45   thorpej 	struct lockf **head = unlock->lf_head;
    432           1.45   thorpej 	struct lockf *lf = *head;
    433           1.45   thorpej 	struct lockf *overlap, **prev;
    434           1.45   thorpej 	int ovcase;
    435           1.45   thorpej 
    436           1.54      yamt 	if (lf == NULL)
    437           1.45   thorpej 		return 0;
    438           1.45   thorpej #ifdef LOCKF_DEBUG
    439           1.45   thorpej 	if (unlock->lf_type != F_UNLCK)
    440           1.45   thorpej 		panic("lf_clearlock: bad type");
    441           1.45   thorpej 	if (lockf_debug & 1)
    442           1.45   thorpej 		lf_print("lf_clearlock", unlock);
    443           1.45   thorpej #endif /* LOCKF_DEBUG */
    444           1.45   thorpej 	prev = head;
    445           1.45   thorpej 	while ((ovcase = lf_findoverlap(lf, unlock, SELF,
    446           1.61        ad 	    &prev, &overlap)) != 0) {
    447           1.45   thorpej 		/*
    448           1.45   thorpej 		 * Wakeup the list of locks to be retried.
    449           1.45   thorpej 		 */
    450           1.45   thorpej 		lf_wakelock(overlap);
    451           1.45   thorpej 
    452           1.45   thorpej 		switch (ovcase) {
    453           1.37     perry 
    454           1.45   thorpej 		case 1: /* overlap == lock */
    455           1.45   thorpej 			*prev = overlap->lf_next;
    456           1.45   thorpej 			lf_free(overlap);
    457           1.45   thorpej 			break;
    458            1.4   mycroft 
    459           1.45   thorpej 		case 2: /* overlap contains lock: split it */
    460           1.45   thorpej 			if (overlap->lf_start == unlock->lf_start) {
    461           1.45   thorpej 				overlap->lf_start = unlock->lf_end + 1;
    462           1.45   thorpej 				break;
    463           1.45   thorpej 			}
    464           1.45   thorpej 			lf_split(overlap, unlock, sparelock);
    465           1.45   thorpej 			overlap->lf_next = unlock->lf_next;
    466           1.45   thorpej 			break;
    467            1.1        ws 
    468           1.45   thorpej 		case 3: /* lock contains overlap */
    469           1.45   thorpej 			*prev = overlap->lf_next;
    470           1.45   thorpej 			lf = overlap->lf_next;
    471           1.45   thorpej 			lf_free(overlap);
    472           1.45   thorpej 			continue;
    473            1.1        ws 
    474           1.45   thorpej 		case 4: /* overlap starts before lock */
    475           1.45   thorpej 			overlap->lf_end = unlock->lf_start - 1;
    476           1.45   thorpej 			prev = &overlap->lf_next;
    477           1.45   thorpej 			lf = overlap->lf_next;
    478           1.45   thorpej 			continue;
    479            1.4   mycroft 
    480           1.45   thorpej 		case 5: /* overlap ends after lock */
    481           1.45   thorpej 			overlap->lf_start = unlock->lf_end + 1;
    482           1.45   thorpej 			break;
    483           1.45   thorpej 		}
    484           1.31      fvdl 		break;
    485           1.27      yamt 	}
    486           1.45   thorpej #ifdef LOCKF_DEBUG
    487           1.45   thorpej 	if (lockf_debug & 1)
    488           1.45   thorpej 		lf_printlist("lf_clearlock", unlock);
    489           1.45   thorpej #endif /* LOCKF_DEBUG */
    490           1.45   thorpej 	return 0;
    491           1.45   thorpej }
    492           1.27      yamt 
    493           1.45   thorpej /*
    494           1.45   thorpej  * Walk the list of locks for an inode and
    495           1.45   thorpej  * return the first blocking lock.
    496           1.45   thorpej  */
    497           1.45   thorpej static struct lockf *
    498           1.45   thorpej lf_getblock(struct lockf *lock)
    499           1.45   thorpej {
    500           1.45   thorpej 	struct lockf **prev, *overlap, *lf = *(lock->lf_head);
    501           1.27      yamt 
    502           1.45   thorpej 	prev = lock->lf_head;
    503           1.45   thorpej 	while (lf_findoverlap(lf, lock, OTHERS, &prev, &overlap) != 0) {
    504           1.45   thorpej 		/*
    505           1.45   thorpej 		 * We've found an overlap, see if it blocks us
    506           1.45   thorpej 		 */
    507           1.45   thorpej 		if ((lock->lf_type == F_WRLCK || overlap->lf_type == F_WRLCK))
    508           1.45   thorpej 			return overlap;
    509           1.45   thorpej 		/*
    510           1.45   thorpej 		 * Nope, point to the next one on the list and
    511           1.45   thorpej 		 * see if it blocks us
    512           1.45   thorpej 		 */
    513           1.45   thorpej 		lf = overlap->lf_next;
    514           1.45   thorpej 	}
    515           1.54      yamt 	return NULL;
    516            1.1        ws }
    517            1.1        ws 
    518            1.1        ws /*
    519            1.1        ws  * Set a byte-range lock.
    520            1.1        ws  */
    521           1.24      yamt static int
    522           1.27      yamt lf_setlock(struct lockf *lock, struct lockf **sparelock,
    523           1.61        ad     kmutex_t *interlock)
    524            1.1        ws {
    525           1.15  augustss 	struct lockf *block;
    526            1.1        ws 	struct lockf **head = lock->lf_head;
    527            1.1        ws 	struct lockf **prev, *overlap, *ltmp;
    528           1.61        ad 	int ovcase, needtolink, error;
    529            1.1        ws 
    530            1.1        ws #ifdef LOCKF_DEBUG
    531            1.1        ws 	if (lockf_debug & 1)
    532            1.1        ws 		lf_print("lf_setlock", lock);
    533            1.1        ws #endif /* LOCKF_DEBUG */
    534            1.1        ws 
    535            1.1        ws 	/*
    536            1.1        ws 	 * Scan lock list for this file looking for locks that would block us.
    537            1.1        ws 	 */
    538            1.7  christos 	while ((block = lf_getblock(lock)) != NULL) {
    539            1.1        ws 		/*
    540            1.1        ws 		 * Free the structure and return if nonblocking.
    541            1.1        ws 		 */
    542            1.1        ws 		if ((lock->lf_flags & F_WAIT) == 0) {
    543           1.38  christos 			lf_free(lock);
    544           1.29      yamt 			return EAGAIN;
    545            1.1        ws 		}
    546            1.1        ws 		/*
    547            1.1        ws 		 * We are blocked. Since flock style locks cover
    548            1.1        ws 		 * the whole file, there is no chance for deadlock.
    549            1.1        ws 		 * For byte-range locks we must check for deadlock.
    550            1.1        ws 		 *
    551            1.1        ws 		 * Deadlock detection is done by looking through the
    552            1.1        ws 		 * wait channels to see if there are any cycles that
    553            1.1        ws 		 * involve us. MAXDEPTH is set just to make sure we
    554           1.16  sommerfe 		 * do not go off into neverneverland.
    555            1.1        ws 		 */
    556            1.1        ws 		if ((lock->lf_flags & F_POSIX) &&
    557            1.1        ws 		    (block->lf_flags & F_POSIX)) {
    558           1.21   thorpej 			struct lwp *wlwp;
    559           1.48     perry 			volatile const struct lockf *waitblock;
    560            1.1        ws 			int i = 0;
    561           1.52      yamt 			struct proc *p;
    562            1.1        ws 
    563           1.52      yamt 			p = (struct proc *)block->lf_id;
    564           1.52      yamt 			KASSERT(p != NULL);
    565           1.52      yamt 			while (i++ < maxlockdepth) {
    566           1.64        ad 				mutex_enter(p->p_lock);
    567           1.52      yamt 				if (p->p_nlwps > 1) {
    568           1.64        ad 					mutex_exit(p->p_lock);
    569           1.52      yamt 					break;
    570           1.52      yamt 				}
    571           1.52      yamt 				wlwp = LIST_FIRST(&p->p_lwps);
    572           1.57        ad 				lwp_lock(wlwp);
    573           1.65        ad 				if (wlwp->l_wchan == NULL ||
    574           1.65        ad 				    wlwp->l_wmesg != lockstr) {
    575           1.57        ad 					lwp_unlock(wlwp);
    576           1.64        ad 					mutex_exit(p->p_lock);
    577           1.52      yamt 					break;
    578           1.52      yamt 				}
    579           1.44  christos 				waitblock = wlwp->l_wchan;
    580           1.57        ad 				lwp_unlock(wlwp);
    581           1.64        ad 				mutex_exit(p->p_lock);
    582            1.1        ws 				/* Get the owner of the blocking lock */
    583            1.1        ws 				waitblock = waitblock->lf_next;
    584            1.1        ws 				if ((waitblock->lf_flags & F_POSIX) == 0)
    585            1.1        ws 					break;
    586           1.52      yamt 				p = (struct proc *)waitblock->lf_id;
    587           1.52      yamt 				if (p == curproc) {
    588           1.38  christos 					lf_free(lock);
    589           1.29      yamt 					return EDEADLK;
    590            1.1        ws 				}
    591            1.1        ws 			}
    592           1.16  sommerfe 			/*
    593           1.36     peter 			 * If we're still following a dependency chain
    594           1.16  sommerfe 			 * after maxlockdepth iterations, assume we're in
    595           1.16  sommerfe 			 * a cycle to be safe.
    596           1.16  sommerfe 			 */
    597           1.16  sommerfe 			if (i >= maxlockdepth) {
    598           1.38  christos 				lf_free(lock);
    599           1.29      yamt 				return EDEADLK;
    600           1.16  sommerfe 			}
    601            1.1        ws 		}
    602            1.1        ws 		/*
    603            1.1        ws 		 * For flock type locks, we must first remove
    604            1.1        ws 		 * any shared locks that we hold before we sleep
    605            1.1        ws 		 * waiting for an exclusive lock.
    606            1.1        ws 		 */
    607            1.1        ws 		if ((lock->lf_flags & F_FLOCK) &&
    608            1.1        ws 		    lock->lf_type == F_WRLCK) {
    609            1.1        ws 			lock->lf_type = F_UNLCK;
    610           1.27      yamt 			(void) lf_clearlock(lock, NULL);
    611            1.1        ws 			lock->lf_type = F_WRLCK;
    612            1.1        ws 		}
    613            1.1        ws 		/*
    614            1.1        ws 		 * Add our lock to the blocked list and sleep until we're free.
    615            1.1        ws 		 * Remember who blocked us (for deadlock detection).
    616            1.1        ws 		 */
    617            1.1        ws 		lock->lf_next = block;
    618           1.12      fvdl 		TAILQ_INSERT_TAIL(&block->lf_blkhd, lock, lf_block);
    619            1.1        ws #ifdef LOCKF_DEBUG
    620            1.1        ws 		if (lockf_debug & 1) {
    621            1.1        ws 			lf_print("lf_setlock: blocking on", block);
    622            1.1        ws 			lf_printlist("lf_setlock", block);
    623            1.1        ws 		}
    624            1.1        ws #endif /* LOCKF_DEBUG */
    625           1.61        ad 		error = cv_wait_sig(&lock->lf_cv, interlock);
    626           1.16  sommerfe 
    627           1.16  sommerfe 		/*
    628           1.65        ad 		 * We may have been awoken by a signal (in
    629           1.16  sommerfe 		 * which case we must remove ourselves from the
    630           1.16  sommerfe 		 * blocked list) and/or by another process
    631           1.16  sommerfe 		 * releasing a lock (in which case we have already
    632           1.16  sommerfe 		 * been removed from the blocked list and our
    633           1.54      yamt 		 * lf_next field set to NULL).
    634           1.16  sommerfe 		 */
    635           1.54      yamt 		if (lock->lf_next != NULL) {
    636           1.16  sommerfe 			TAILQ_REMOVE(&lock->lf_next->lf_blkhd, lock, lf_block);
    637           1.54      yamt 			lock->lf_next = NULL;
    638           1.16  sommerfe 		}
    639            1.7  christos 		if (error) {
    640           1.38  christos 			lf_free(lock);
    641           1.29      yamt 			return error;
    642            1.1        ws 		}
    643            1.1        ws 	}
    644            1.1        ws 	/*
    645            1.1        ws 	 * No blocks!!  Add the lock.  Note that we will
    646            1.1        ws 	 * downgrade or upgrade any overlapping locks this
    647            1.1        ws 	 * process already owns.
    648            1.1        ws 	 *
    649            1.1        ws 	 * Skip over locks owned by other processes.
    650            1.1        ws 	 * Handle any locks that overlap and are owned by ourselves.
    651            1.1        ws 	 */
    652            1.1        ws 	prev = head;
    653            1.1        ws 	block = *head;
    654            1.1        ws 	needtolink = 1;
    655            1.1        ws 	for (;;) {
    656            1.7  christos 		ovcase = lf_findoverlap(block, lock, SELF, &prev, &overlap);
    657            1.7  christos 		if (ovcase)
    658            1.1        ws 			block = overlap->lf_next;
    659            1.1        ws 		/*
    660            1.1        ws 		 * Six cases:
    661            1.1        ws 		 *	0) no overlap
    662            1.1        ws 		 *	1) overlap == lock
    663            1.1        ws 		 *	2) overlap contains lock
    664            1.1        ws 		 *	3) lock contains overlap
    665            1.1        ws 		 *	4) overlap starts before lock
    666            1.1        ws 		 *	5) overlap ends after lock
    667            1.1        ws 		 */
    668            1.1        ws 		switch (ovcase) {
    669            1.1        ws 		case 0: /* no overlap */
    670            1.1        ws 			if (needtolink) {
    671            1.1        ws 				*prev = lock;
    672            1.1        ws 				lock->lf_next = overlap;
    673            1.1        ws 			}
    674            1.1        ws 			break;
    675            1.1        ws 
    676            1.1        ws 		case 1: /* overlap == lock */
    677            1.1        ws 			/*
    678            1.1        ws 			 * If downgrading lock, others may be
    679            1.1        ws 			 * able to acquire it.
    680            1.1        ws 			 */
    681            1.1        ws 			if (lock->lf_type == F_RDLCK &&
    682            1.1        ws 			    overlap->lf_type == F_WRLCK)
    683            1.1        ws 				lf_wakelock(overlap);
    684            1.1        ws 			overlap->lf_type = lock->lf_type;
    685           1.38  christos 			lf_free(lock);
    686            1.1        ws 			lock = overlap; /* for debug output below */
    687            1.1        ws 			break;
    688            1.1        ws 
    689            1.1        ws 		case 2: /* overlap contains lock */
    690            1.1        ws 			/*
    691            1.1        ws 			 * Check for common starting point and different types.
    692            1.1        ws 			 */
    693            1.1        ws 			if (overlap->lf_type == lock->lf_type) {
    694           1.38  christos 				lf_free(lock);
    695            1.1        ws 				lock = overlap; /* for debug output below */
    696            1.1        ws 				break;
    697            1.1        ws 			}
    698            1.1        ws 			if (overlap->lf_start == lock->lf_start) {
    699            1.1        ws 				*prev = lock;
    700            1.1        ws 				lock->lf_next = overlap;
    701            1.1        ws 				overlap->lf_start = lock->lf_end + 1;
    702            1.1        ws 			} else
    703           1.27      yamt 				lf_split(overlap, lock, sparelock);
    704            1.1        ws 			lf_wakelock(overlap);
    705            1.1        ws 			break;
    706            1.1        ws 
    707            1.1        ws 		case 3: /* lock contains overlap */
    708            1.1        ws 			/*
    709            1.1        ws 			 * If downgrading lock, others may be able to
    710            1.1        ws 			 * acquire it, otherwise take the list.
    711            1.1        ws 			 */
    712            1.1        ws 			if (lock->lf_type == F_RDLCK &&
    713            1.1        ws 			    overlap->lf_type == F_WRLCK) {
    714            1.1        ws 				lf_wakelock(overlap);
    715            1.1        ws 			} else {
    716           1.19      matt 				while ((ltmp = TAILQ_FIRST(&overlap->lf_blkhd))) {
    717           1.16  sommerfe 					KASSERT(ltmp->lf_next == overlap);
    718           1.12      fvdl 					TAILQ_REMOVE(&overlap->lf_blkhd, ltmp,
    719           1.12      fvdl 					    lf_block);
    720           1.16  sommerfe 					ltmp->lf_next = lock;
    721           1.12      fvdl 					TAILQ_INSERT_TAIL(&lock->lf_blkhd,
    722           1.12      fvdl 					    ltmp, lf_block);
    723           1.12      fvdl 				}
    724            1.1        ws 			}
    725            1.1        ws 			/*
    726            1.1        ws 			 * Add the new lock if necessary and delete the overlap.
    727            1.1        ws 			 */
    728            1.1        ws 			if (needtolink) {
    729            1.1        ws 				*prev = lock;
    730            1.1        ws 				lock->lf_next = overlap->lf_next;
    731            1.1        ws 				prev = &lock->lf_next;
    732            1.1        ws 				needtolink = 0;
    733            1.1        ws 			} else
    734            1.1        ws 				*prev = overlap->lf_next;
    735           1.39  christos 			lf_free(overlap);
    736            1.1        ws 			continue;
    737            1.1        ws 
    738            1.1        ws 		case 4: /* overlap starts before lock */
    739            1.1        ws 			/*
    740            1.1        ws 			 * Add lock after overlap on the list.
    741            1.1        ws 			 */
    742            1.1        ws 			lock->lf_next = overlap->lf_next;
    743            1.1        ws 			overlap->lf_next = lock;
    744            1.1        ws 			overlap->lf_end = lock->lf_start - 1;
    745            1.1        ws 			prev = &lock->lf_next;
    746            1.1        ws 			lf_wakelock(overlap);
    747            1.1        ws 			needtolink = 0;
    748            1.1        ws 			continue;
    749            1.1        ws 
    750            1.1        ws 		case 5: /* overlap ends after lock */
    751            1.1        ws 			/*
    752            1.1        ws 			 * Add the new lock before overlap.
    753            1.1        ws 			 */
    754            1.1        ws 			if (needtolink) {
    755            1.1        ws 				*prev = lock;
    756            1.1        ws 				lock->lf_next = overlap;
    757            1.1        ws 			}
    758            1.1        ws 			overlap->lf_start = lock->lf_end + 1;
    759            1.1        ws 			lf_wakelock(overlap);
    760            1.1        ws 			break;
    761            1.1        ws 		}
    762            1.1        ws 		break;
    763            1.1        ws 	}
    764            1.1        ws #ifdef LOCKF_DEBUG
    765            1.1        ws 	if (lockf_debug & 1) {
    766            1.1        ws 		lf_print("lf_setlock: got the lock", lock);
    767            1.1        ws 		lf_printlist("lf_setlock", lock);
    768            1.1        ws 	}
    769            1.1        ws #endif /* LOCKF_DEBUG */
    770           1.29      yamt 	return 0;
    771            1.1        ws }
    772            1.1        ws 
    773            1.1        ws /*
    774            1.1        ws  * Check whether there is a blocking lock,
    775            1.1        ws  * and if so return its process identifier.
    776            1.1        ws  */
    777           1.24      yamt static int
    778           1.25      yamt lf_getlock(struct lockf *lock, struct flock *fl)
    779            1.1        ws {
    780           1.15  augustss 	struct lockf *block;
    781            1.1        ws 
    782            1.1        ws #ifdef LOCKF_DEBUG
    783            1.1        ws 	if (lockf_debug & 1)
    784            1.1        ws 		lf_print("lf_getlock", lock);
    785            1.1        ws #endif /* LOCKF_DEBUG */
    786            1.1        ws 
    787            1.7  christos 	if ((block = lf_getblock(lock)) != NULL) {
    788            1.1        ws 		fl->l_type = block->lf_type;
    789            1.1        ws 		fl->l_whence = SEEK_SET;
    790            1.1        ws 		fl->l_start = block->lf_start;
    791            1.1        ws 		if (block->lf_end == -1)
    792            1.1        ws 			fl->l_len = 0;
    793            1.1        ws 		else
    794            1.1        ws 			fl->l_len = block->lf_end - block->lf_start + 1;
    795            1.1        ws 		if (block->lf_flags & F_POSIX)
    796           1.23   mycroft 			fl->l_pid = ((struct proc *)block->lf_id)->p_pid;
    797            1.1        ws 		else
    798            1.1        ws 			fl->l_pid = -1;
    799            1.1        ws 	} else {
    800            1.1        ws 		fl->l_type = F_UNLCK;
    801            1.1        ws 	}
    802           1.29      yamt 	return 0;
    803            1.1        ws }
    804            1.1        ws 
    805            1.1        ws /*
    806           1.45   thorpej  * Do an advisory lock operation.
    807            1.1        ws  */
    808           1.45   thorpej int
    809           1.45   thorpej lf_advlock(struct vop_advlock_args *ap, struct lockf **head, off_t size)
    810            1.1        ws {
    811           1.45   thorpej 	struct flock *fl = ap->a_fl;
    812           1.45   thorpej 	struct lockf *lock = NULL;
    813           1.45   thorpej 	struct lockf *sparelock;
    814           1.65        ad 	kmutex_t *interlock = lockf_lock;
    815           1.45   thorpej 	off_t start, end;
    816           1.45   thorpej 	int error = 0;
    817            1.1        ws 
    818           1.45   thorpej 	/*
    819           1.45   thorpej 	 * Convert the flock structure into a start and end.
    820           1.45   thorpej 	 */
    821           1.45   thorpej 	switch (fl->l_whence) {
    822           1.45   thorpej 	case SEEK_SET:
    823           1.45   thorpej 	case SEEK_CUR:
    824            1.1        ws 		/*
    825           1.45   thorpej 		 * Caller is responsible for adding any necessary offset
    826           1.45   thorpej 		 * when SEEK_CUR is used.
    827            1.1        ws 		 */
    828           1.45   thorpej 		start = fl->l_start;
    829           1.45   thorpej 		break;
    830           1.45   thorpej 
    831           1.45   thorpej 	case SEEK_END:
    832           1.45   thorpej 		start = size + fl->l_start;
    833           1.45   thorpej 		break;
    834           1.45   thorpej 
    835           1.45   thorpej 	default:
    836           1.45   thorpej 		return EINVAL;
    837            1.1        ws 	}
    838  1.69.10.2.2.1      matt 
    839  1.69.10.2.2.1      matt 	if (fl->l_len == 0)
    840  1.69.10.2.2.1      matt 		end = -1;
    841  1.69.10.2.2.1      matt 	else {
    842  1.69.10.2.2.1      matt 		if (fl->l_len > 0)
    843  1.69.10.2.2.1      matt 			end = start + fl->l_len - 1;
    844  1.69.10.2.2.1      matt 		else {
    845  1.69.10.2.2.1      matt 			/* lockf() allows -ve lengths */
    846  1.69.10.2.2.1      matt 			end = start - 1;
    847  1.69.10.2.2.1      matt 			start += fl->l_len;
    848  1.69.10.2.2.1      matt 		}
    849  1.69.10.2.2.1      matt 	}
    850           1.45   thorpej 	if (start < 0)
    851           1.45   thorpej 		return EINVAL;
    852            1.1        ws 
    853           1.45   thorpej 	/*
    854           1.61        ad 	 * Allocate locks before acquiring the interlock.  We need two
    855           1.55        ad 	 * locks in the worst case.
    856           1.45   thorpej 	 */
    857           1.45   thorpej 	switch (ap->a_op) {
    858           1.45   thorpej 	case F_SETLK:
    859           1.45   thorpej 	case F_UNLCK:
    860            1.1        ws 		/*
    861           1.55        ad 		 * XXX For F_UNLCK case, we can re-use the lock.
    862            1.1        ws 		 */
    863           1.46  christos 		if ((ap->a_flags & F_FLOCK) == 0) {
    864           1.45   thorpej 			/*
    865           1.55        ad 			 * Byte-range lock might need one more lock.
    866           1.45   thorpej 			 */
    867      1.69.10.2       snj 			sparelock = lf_alloc(0);
    868           1.45   thorpej 			if (sparelock == NULL) {
    869           1.45   thorpej 				error = ENOMEM;
    870           1.45   thorpej 				goto quit;
    871           1.45   thorpej 			}
    872           1.45   thorpej 			break;
    873            1.1        ws 		}
    874           1.45   thorpej 		/* FALLTHROUGH */
    875           1.45   thorpej 
    876           1.45   thorpej 	case F_GETLK:
    877           1.45   thorpej 		sparelock = NULL;
    878           1.45   thorpej 		break;
    879           1.45   thorpej 
    880           1.45   thorpej 	default:
    881           1.45   thorpej 		return EINVAL;
    882           1.45   thorpej 	}
    883           1.45   thorpej 
    884      1.69.10.2       snj 	switch (ap->a_op) {
    885      1.69.10.2       snj 	case F_SETLK:
    886      1.69.10.2       snj 		lock = lf_alloc(1);
    887      1.69.10.2       snj 		break;
    888      1.69.10.2       snj 	case F_UNLCK:
    889      1.69.10.2       snj 		if (start == 0 || end == -1) {
    890      1.69.10.2       snj 			/* never split */
    891      1.69.10.2       snj 			lock = lf_alloc(0);
    892      1.69.10.2       snj 		} else {
    893      1.69.10.2       snj 			/* might split */
    894      1.69.10.2       snj 			lock = lf_alloc(2);
    895      1.69.10.2       snj 		}
    896      1.69.10.2       snj 		break;
    897      1.69.10.2       snj 	case F_GETLK:
    898      1.69.10.2       snj 		lock = lf_alloc(0);
    899      1.69.10.2       snj 		break;
    900      1.69.10.2       snj 	}
    901           1.45   thorpej 	if (lock == NULL) {
    902           1.45   thorpej 		error = ENOMEM;
    903           1.45   thorpej 		goto quit;
    904            1.1        ws 	}
    905            1.1        ws 
    906           1.61        ad 	mutex_enter(interlock);
    907            1.1        ws 
    908            1.1        ws 	/*
    909           1.45   thorpej 	 * Avoid the common case of unlocking when inode has no locks.
    910            1.1        ws 	 */
    911           1.45   thorpej 	if (*head == (struct lockf *)0) {
    912           1.45   thorpej 		if (ap->a_op != F_SETLK) {
    913           1.45   thorpej 			fl->l_type = F_UNLCK;
    914           1.45   thorpej 			error = 0;
    915           1.45   thorpej 			goto quit_unlock;
    916           1.45   thorpej 		}
    917            1.1        ws 	}
    918           1.45   thorpej 
    919            1.1        ws 	/*
    920           1.45   thorpej 	 * Create the lockf structure.
    921           1.45   thorpej 	 */
    922           1.45   thorpej 	lock->lf_start = start;
    923           1.45   thorpej 	lock->lf_end = end;
    924           1.45   thorpej 	lock->lf_head = head;
    925           1.45   thorpej 	lock->lf_type = fl->l_type;
    926           1.45   thorpej 	lock->lf_next = (struct lockf *)0;
    927           1.45   thorpej 	TAILQ_INIT(&lock->lf_blkhd);
    928           1.45   thorpej 	lock->lf_flags = ap->a_flags;
    929           1.45   thorpej 	if (lock->lf_flags & F_POSIX) {
    930           1.45   thorpej 		KASSERT(curproc == (struct proc *)ap->a_id);
    931           1.45   thorpej 	}
    932  1.69.10.2.2.1      matt 	lock->lf_id = ap->a_id;
    933           1.45   thorpej 
    934            1.1        ws 	/*
    935           1.45   thorpej 	 * Do the requested operation.
    936            1.1        ws 	 */
    937           1.45   thorpej 	switch (ap->a_op) {
    938            1.1        ws 
    939           1.45   thorpej 	case F_SETLK:
    940           1.45   thorpej 		error = lf_setlock(lock, &sparelock, interlock);
    941           1.45   thorpej 		lock = NULL; /* lf_setlock freed it */
    942           1.45   thorpej 		break;
    943            1.1        ws 
    944           1.45   thorpej 	case F_UNLCK:
    945           1.45   thorpej 		error = lf_clearlock(lock, &sparelock);
    946           1.45   thorpej 		break;
    947            1.1        ws 
    948           1.45   thorpej 	case F_GETLK:
    949           1.45   thorpej 		error = lf_getlock(lock, fl);
    950           1.45   thorpej 		break;
    951           1.37     perry 
    952           1.45   thorpej 	default:
    953           1.45   thorpej 		break;
    954           1.45   thorpej 		/* NOTREACHED */
    955           1.45   thorpej 	}
    956            1.1        ws 
    957           1.45   thorpej quit_unlock:
    958           1.61        ad 	mutex_exit(interlock);
    959           1.45   thorpej quit:
    960           1.45   thorpej 	if (lock)
    961           1.45   thorpej 		lf_free(lock);
    962           1.45   thorpej 	if (sparelock)
    963           1.45   thorpej 		lf_free(sparelock);
    964            1.1        ws 
    965           1.45   thorpej 	return error;
    966            1.1        ws }
    967           1.65        ad 
    968           1.65        ad /*
    969           1.65        ad  * Initialize subsystem.   XXX We use a global lock.  This could be the
    970           1.65        ad  * vnode interlock, but the deadlock detection code may need to inspect
    971           1.65        ad  * locks belonging to other files.
    972           1.65        ad  */
    973           1.65        ad void
    974           1.65        ad lf_init(void)
    975           1.65        ad {
    976           1.65        ad 
    977           1.65        ad 	lockf_cache = pool_cache_init(sizeof(struct lockf), 0, 0, 0, "lockf",
    978           1.65        ad  	    NULL, IPL_NONE, lf_ctor, lf_dtor, NULL);
    979           1.65        ad         lockf_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NONE);
    980           1.65        ad }
    981